Covalently immobilize crude d-amino acid transaminase onto UiO-66-NH2 surface for d-Ala biosynthesis

Int J Biol Macromol. 2021 Apr 1:175:451-458. doi: 10.1016/j.ijbiomac.2021.02.027. Epub 2021 Feb 6.

Abstract

Enzyme reaction has been accepted widely in numerous applications owing to the high efficiency and stereo-selectivity, as well as simple preparation by gene engineering. However, the fragility and complex purification process of the enzyme are long-standing problems which limit the large-scale application. One possible solution may be the enzyme immobilization. As one type of porous material with high loading capacity and designable functionality, Metal-Organic Frameworks (MOFs) are ideal choices for the immobilization of enzyme with a considerable interest in recent years. In this study, d-amino acid transaminase (DAT), an important enzyme for industrial synthesis of d-Ala, was covalently immobilized on the surface of a star MOFs material, UiO-66-NH2. Interestingly, we found that the nanoscale hybrid enzyme UiO-66-NH2-Gd-DAT not only maintained the high catalytic efficiency but also got rid of the interference of polluting enzymes, which meant that we could obtain efficient and stereo-selective immobilized enzyme without complex purification process. In general, our findings demonstrated that using UiO-66-NH2 might be a promising strategy to immobilize enzyme and produce effective biocatalyst with high activity and stereo-selectivity.

Keywords: Biocatalysis; Covalently immobilize; UiO-66-NH(2); d-amino acid transaminase.

MeSH terms

  • Adsorption
  • Alanine / biosynthesis*
  • Amino Acids
  • Catalysis
  • Enzymes, Immobilized / chemistry
  • Metal-Organic Frameworks / chemistry
  • Organometallic Compounds / chemistry*
  • Phthalic Acids / chemistry*
  • Porosity
  • Transaminases / chemistry*
  • Transaminases / metabolism
  • Water
  • Water Purification

Substances

  • Amino Acids
  • Enzymes, Immobilized
  • Metal-Organic Frameworks
  • Organometallic Compounds
  • Phthalic Acids
  • UiO-66
  • Water
  • Transaminases
  • Alanine